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In-flight stability of quantum cascade laser-based infrared absorption spectroscopy measurements of atmospheric carbon monoxide

机译:基于量子级联激光的红外吸收光谱测量大气中一氧化碳的飞行稳定性

摘要

Airborne carbon monoxide (CO) measurements based on Quantum cascade Laser infrared Absorption Spectroscopy (QLAS) were performed on the German High-Altitude Long-range Observatory (HALO) aircraft during test flights in January 2015. Here we investigate the in-flight stability of TRISTAR (TRacer In-Situ Tdlas for Atmospheric Research), a multilaser QLAS instrument for the detection of tropospheric CO, methane and formaldehyde (HCHO). During one test flight the instrument was probed with tank air to measure a constant mixing ratio of CO and zero air for HCHO. Here we investigate the instrument stability for the CO channel of TRISTAR and identify potential noise sources as well as environmental processes that limit the stability of the instrument. The 1σ reproducibility of the constant CO measurement yields a value of 1.2% (2.9 ppbv) corresponding to an optical density limit of 0.001 for a 5-s average. The CO precision is ultimately limited by an etalon fringe originating from the double corner-cube White cell, whose phase and amplitude changes with the aircraft heading. This article is part of the topical collection “Field Laser Applications in Industry and Research” guest edited by Francesco D’Amato, Erik Kerstel, and Alan Fried.
机译:2015年1月,在德国高空远程天文台(HALO)飞机上进行了基于量子级联激光红外吸收光谱(QLAS)的机载一氧化碳(CO)测量。在这里,我们研究了TRISTAR(用于大气研究的TRacer Insitu Tdlas),一种用于检测对流层CO,甲烷和甲醛(HCHO)的多层激光QLAS仪器。在一次试飞中,用罐内空气探测仪器,以测量HCHO的CO和零空气的恒定混合比。在这里,我们研究了TRISTAR CO通道的仪器稳定性,并确定了潜在的噪声源以及限制仪器稳定性的环境过程。恒定CO测量的1σ重现性产生1.2%(2.9 ppbv)的值,对应于5 s平均值的0.001的光密度极限。 CO精度最终受到源自双角立方白细胞的标准具条纹的限制,该标准具条纹的相位和幅度随飞机航向而变化。本文是Francesco D’Amato,Erik Kerstel和Alan Fried编辑的主题集合“工业和研究中的场激光应用”的一部分。

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